A retractor assembly includes a base, a first side assembly, a second side assembly, and a medial arm assembly. The first side assembly is coupled to a first side of the base and translates relative to the base along a first direction. The second side assembly is coupled to a second side of the base and configured to translate relative to the base along the first direction. The medial arm assembly is coupled to the base and can extend in an extension direction and retract in a retraction direction. The extension direction is opposite the retraction direction. The extension direction and the retraction direction are perpendicular to the first direction. The medial arm assembly includes a body, and a blade assembly. The blade assembly includes a receiving portion and a medial blade. The receiving portion and the medial blade are rotatably interfaced via a ball and a socket.
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1. A retractor assembly, comprising:
a base;
a first side assembly coupled to a first side of the base and configured to translate relative to the base along a first direction;
a second side assembly coupled to a second side of the base and configured to translate relative to the base along the first direction; and
a medial arm assembly coupled to the base and configured to extend in an extension direction and retract in a retraction direction relative to the base, wherein the extension direction is opposite to the retraction direction and the extension direction and the retraction direction are perpendicular to the first direction, the medial arm assembly comprising:
a body coupled to the base;
a receiving portion including a socket with a locking member, wherein the receiving portion is configured to be movable relative to the body; and
a blade assembly comprising a medial blade including a ball, wherein the receiving portion and the blade assembly are configured to rotatably interface via the ball and the socket, and wherein the locking member includes a set screw configured to selectively engage a pin in the receiving portion and drive the pin into engagement with the ball to restrict rotation of the medial blade relative to the receiving portion.
8. A retractor assembly, comprising:
a base;
a first side assembly coupled to a first side of the base and configured to move relative to the base along a first direction;
a second side assembly coupled to a second side of the base and configured to move relative to the base along the first direction; and
a medial arm assembly coupled to the base between the first side assembly and the second side assembly, the medial arm assembly comprising:
a medial arm body coupled to the base;
a frame configured to translate relative to the medial arm body through an aperture of the medial arm body along a second direction perpendicular to the first direction;
a receiving member hingedly coupled to the frame such that the receiving member is rotatable relative to the frame about a first axis; and
a medial blade assembly including a medial blade and a body rotatably coupled to the receiving member such that the medial blade assembly is rotatable relative to the receiving member about a second axis perpendicular to the first axis and perpendicular to a medial blade axis, the medial blade axis extending along a length of the medial blade, the medial blade comprising a first member configured to slidably interface with a channel of the body, and a second member configured to selectably deflect relative to the first member to enable repositioning of the medial blade along the channel;
wherein rotation of the receiving member relative to the frame causes rotation of the medial blade relative to the frame about the first axis.
15. A retractor assembly, comprising:
a base;
a first side assembly coupled to a first side of the base and configured to translate relative to the base along a first direction;
a second side assembly coupled to a second side of the base and configured to translate relative to the base along the first direction; and
a medial arm assembly coupled to the base and configured to extend relative to the base in an extension direction and retract relative to the base in a retraction direction, wherein the extension direction is opposite to the retraction direction and the extension direction and the retraction direction are perpendicular to the first direction, the medial arm assembly comprising:
a body coupled to the base;
a frame coupled to the body and movable in the retraction direction and the extension direction relative to the body and along a longitudinal axis of the frame;
a receiver portion coupled to the frame, wherein the receiver portion is configured pivot relative to the frame about a first axis perpendicular to the longitudinal axis; and
a medial blade assembly coupled to the receiver portion via a rotational interface configured to facilitate rotation of the medial blade assembly relative to the receiver portion about a second axis perpendicular to the first axis and perpendicular to a longitudinal axis of the medial blade assembly, wherein the rotational interface is positioned outward from the first axis relative to the base;
wherein pivoting of the receiver portion relative to the frame causes rotation of the medial blade assembly relative to the frame about the first axis.
2. The retractor assembly of
3. The retractor assembly of
4. The retractor assembly of
5. The retractor assembly of
threadingly interface with an aperture of the receiving portion;
engage the pin; and
drive the pin into engagement with a corresponding surface of the ball;
wherein the pin comprises a surface at one end configured to interface with an end of the set screw and a surface at a second end configured to interface with the corresponding surface of the ball.
6. The retractor assembly of
7. The retractor assembly of
9. The retractor assembly of
wherein the second member comprises one or more tabs configured to interface with one or more of a plurality of notches of the body and at least a portion of the first member is configured to slidably interface within the channel of the body.
10. The retractor assembly of
11. The retractor assembly of
12. The retractor assembly of
13. The retractor assembly of
14. The retractor assembly of
16. The retractor assembly of
17. The retractor assembly of
18. The retractor assembly of
19. The retractor assembly of
20. The retractor assembly of
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This application is a continuation-in-part of application Ser. No. 15/448,010, filed Mar. 2, 2017, which is a continuation-in-part of application Ser. No. 15/207,026, filed Jul. 11, 2016, which is a continuation in part of application Ser. No. 14/874,073, filed Oct. 2, 2015, which is a continuation-in-part of application Ser. No. 13/720,800, filed Dec. 19, 2012, now U.S. Pat. No. 9,386,916, which claims the benefit of Provisional Application No. 61/577,857 filed Dec. 20, 2011. The entire contents of all of these applications are incorporated herein by reference.
The present invention relates to surgical devices for retracting anatomy to provide exposure of an operating site, and more particularly, to retraction apparatus providing improved access to a surgical site for a spine procedure.
Surgical procedures typically require the use of a retractor to hold anatomies and/or tissues out of the way from the incision down to the actual surgical site. In the case of posterior spinal surgery for implanting various spine fixation components and/or other spinal orthopedic devices, it is necessary to retract different tissue types including large and strong paraspinal muscles in order to get to the actual surgical site. In order to accomplish this goal, spinal retractors have been developed that hold back the desired anatomy of a spinal surgical site and is fixed relative to the patient either directly or indirectly.
Many different types of spinal retractors are currently available many of which use retractor blades—a part of the distraction mechanism of the spinal retractor that enters the site of the incision and physically holds the anatomy apart. The retractor blades can be attached to a frame at an angle such as about 90 degrees from horizontal (i.e. generally vertical) or as to have a variable angle. However, current spinal retractors have various deficiencies. For instance, fixed angle retractor blade configurations limit flexibility of the spinal retractor, including loss of surgical site precision and overall stabilization. The variable angle retractor blade configurations lack preciseness and flexibility in retractor blade positioning.
It is therefore evident from the above that there is a need for an improved spinal retractor that can overcome the deficiencies of current spinal retractors. It is also evident from the above that there is a need for an improved spinal retractor which provides enhanced preciseness and flexibility in retractor blade positioning. It is furthermore evident that there is a need for an improved spinal retractor as aforementioned which also allows for instrument and/or component retention and positioning by the retractor blade assembly.
The present disclosure relates to a retractor assembly, according to an exemplary embodiment. The retractor assembly includes a base, a first side assembly, a second side assembly, and a medial arm assembly. The first side assembly is coupled to a first side of the base and is configured to translate relative to the base along a first direction. The second side assembly is coupled to a second side of the base and is configured to translate relative to the base along the first direction. The medial arm assembly is coupled to the base and is configured to extend in an extension direction and retract in a retraction direction. The extension direction is opposite the retraction direction. The extension direction and the retraction direction are perpendicular to the first direction. The medial arm assembly includes a body and a blade assembly. The blade assembly includes a receiving portion and a medial blade. The receiving portion and the medial blade are configured to rotatably interface via a ball and a socket.
The medial arm assembly includes a frame configured to translate relative to the body, according to an exemplary embodiment. The blade assembly is coupled to the frame.
The blade assembly is configured to rotatably interface with the frame via a hinge and pivot about a first axis extending through a center of the hinge, according to an exemplary embodiment.
The medial blade is configured to rotatably interface with the receiving portion about a rotational axis extending outwards from a center of the receiving portion, according to an exemplary embodiment.
The medial blade includes the ball and the receiving portion includes the socket, according to an exemplary embodiment. The socket is configured to receive the ball.
The receiving portion includes a locking member configured to selectably engage the ball to restrict rotation of the blade about the rotational axis, according to an exemplary embodiment.
The locking member includes a set screw, according to an exemplary embodiment. The set screw is configured to threadingly interface with an aperture of the receiving portion, engage a pin, and drive the pin into engagement with a corresponding surface of the ball. The pin has a surface at one end configured to interface with an end of the set screw and a surface at a second end configured to interface with the corresponding surface of the ball.
The body includes a locking mechanism configured to selectably transition between a locked mode and an unlocked mode, according to an exemplary embodiment. The locked mode restricts translation of the frame relative to the body. The unlocked mode allows translation of the frame relative to the body.
The body includes a releasable ratcheting mechanism, according to an exemplary embodiment. The releasable ratcheting mechanism is configured to restrict translation of the frame in at least one of the extension direction and the retraction direction.
Another implementation of the present disclosure relates to a retractor assembly, according to an exemplary embodiment. The retractor assembly includes a base, a first side assembly, a second side assembly, and a medial arm assembly. The medial arm assembly is coupled to the base and includes a medial arm body, a frame, and a medial blade assembly. The frame is configured to translate relative to the medial arm body through an aperture of the medial arm body. The medial blade assembly includes a receiving member, a medial blade, and a body. The receiving member is configured to hingedly interface at an end of the frame. The body is configured to rotatably interface with the receiving member. The medial blade includes a first member configured to slidably interface with a channel of the body, and a second member configured to selectably deflect relative to the first member to enable repositioning of the blade along the channel.
The second member includes one or more tabs configured to interface with one or more notches of the body and at least a portion of the first member is configured to slidably interface within the channel of the body, according to an exemplary embodiment.
The notches are disposed along an exterior surface of the body and define predefined positions of the medial blade with respect to the body, according to an exemplary embodiment.
The second member is configured to selectably deflect between an engaged state and a disengaged state, according to an exemplary embodiment. The engaged state locks the medial blade at a current position relative to the body. The disengaged state allows translation of the medial blade relative to the body. In the engaged state, at least one of the one or more tabs is engaged with at least one of the notches. In the disengaged state the one or more tabs are disengaged from the notches.
The one or more tabs are disposed at an end of the second member, according to an exemplary embodiment. The first member and the second member are disposed a distance apart to define a space therebetween for receiving an adjustment member to transition the second member between the engaged state and the disengaged state.
The blade assembly is configured to receive the adjustment member, according to an exemplary embodiment. The second member is configured to deflect to transition between the engaged state and the disengaged state in response to a rotation of the adjustment member.
The medial blade is configured to releasably interface with a modular tap assembly including a driver, a hoop, a sleeve, and a tap, according to an exemplary embodiment.
Another implementation of the present disclosure relates to a method of operating a retractor, according to an exemplary embodiment. The method includes inserting a blade adjustment member into an opening defined between a first engagement member and a second engagement member of a medial blade of the retractor. The method further includes rotating the blade adjustment member in a first direction to an adjustment position to cause the second engagement member to deflect relative to the first engagement member. The method further includes translating the medial blade to a desired location by translating the blade adjustment member while the blade adjustment member is in the adjustment position.
The method further includes rotating the blade adjustment member in a first direction, according to an exemplary embodiment. Rotating the blade adjustment member in the first direction includes rotating the blade adjustment member a predetermined angular amount, according to an exemplary embodiment.
The method further includes rotating the blade adjustment member in a second direction the predetermined angular amount, according to an exemplary embodiment. The second direction is opposite the first direction.
Rotating the blade adjustment member in the first direction so that the second protrusion of the blade adjustment member causes the second engagement member to deflect causes one or more protrusions of the elongated member to disengage a set of notches, according to an exemplary embodiment.
Further aspects of the present disclosure will become apparent from consideration of the drawings and the following description of various embodiments. A person skilled in the art will realize that other embodiments are possible and that the details can be modified in a number of respects without departing from the inventive concepts disclosed herein. The following drawings and description are to be regarded as illustrative in nature and not restrictive.
The features of the present disclosure will be better understood by reference to the accompanying drawings which illustrate various embodiments, wherein:
Like reference numbers indicate the same or similar parts throughout the several figures.
A description of the features, functions and/or configurations of the components depicted in the various figures will now be presented. It should be appreciated that not all of the features of the components of the figures are necessarily described. Some of these non-discussed features as well as discussed features are inherent from the figures. Other non-discussed features may be inherent in component geometry and/or configuration.
Referring generally to the FIGURES, a spinal retractor is shown. The spinal retractor can include a medial arm configured to extend or retract. The medial arm can include a releasable ratcheting mechanism configured to allow translation of the medial arm in a first direction and restrict translation of the medial arm in a second, opposite, direction. The ratcheting mechanism can be released such that the medial arm can be translated in either direction (e.g., extended or retracted). The medial arm may also include a locking mechanism configured to lock the translation of the medial arm at a current location. The medial arm also includes a ball and socket interface configured to facilitate rotation of a medial blade of the medial arm about a first axis, and a hinge configured to facilitate hinged rotation of the medial blade of the medial arm about a second axis. The socket interface can be locked at a current angular position about the first axis by tightening a set screw. The set screw is configured to engage a pin. The pin can be driven by the set screw to engage a ball of the ball and socket interface to prevent rotation of the medial blade about the first axis. The medial blade of the medial arm can be extended or retracted. A blade extension adjuster can be inserted into an opening of the medial blade and turned ninety degrees to transition the medial blade from a locked configuration to an extension configuration. The medial blade is configured to translate along a track or channel of a body member of the medial arm. The medial blade may be configured to interface with one or more notches along at least part of the length of the channel. The blade extension adjuster can be used to transition the medial blade into a disengaged or extension configuration such that the medial blade does not engage the notches and can be extended or retracted. Once a desired location of the medial blade along the channel is achieved, the blade extension adjuster can be rotated back ninety degrees to transition the medial blade into the locked configuration. A modular tap assembly can be coupled to the medial blade. Advantageously, the medial arm facilitates extension and retraction of the medial blade and/or the modular tap assembly along a first axis, rotation about a first axis and a second axis, and extension or retraction of the medial blade and/or the modular tap assembly in a second direction.
Referring to
Referring to
The frame 12 is in one embodiment a generally elongated member (e.g., a rail, etc.) including a first side slot 20 and a second side slot 22 extending along the longitudinal direction of the frame 12. Frame teeth 24 extend along all or a part of the frame 12 and facilitate adjustment of the first and second side assemblies 14, 16 along the frame 12. As shown in
According to one embodiment, the first side assembly 14 includes a first arm portion 36 and a second arm portion 38. The first arm portion 36 translates along the frame 12, and the second arm portion 38 rotates, or pivots, relative to the first arm portion 36 to provide angulation for a first side blade assembly 40. The first arm portion 36 includes a first side cavity 42 that receives the frame 12, and a first side adjustment knob 44 that engages the frame teeth 24 to move the first arm portion 36, and therefore the first side assembly 14, along the frame 12. The first side adjustment knob 44 is rotatable in opposite directions and engages the frame teeth 24 to provide more or less retraction at a desired site. A first side ratchet mechanism 46 (see
In some embodiments, a first side angulation knob 48 enables pivotal adjustment of the second arm portion 38 relative to the first arm portion 36 between a normal position (see
The first side blade assembly 40 is secured to the second arm portion 38 by way of a first side locking knob 50 (see
According to one embodiment, the second side assembly 16 includes a first arm portion 52 and a second arm portion 54. The first arm portion 52 translates along the frame 12, and the second arm portion 54 rotates, or pivots, relative to the first arm portion 52 to provide angulation for a second side blade assembly 56. The first arm portion 52 includes a second side cavity 58 that receives the frame 12, and a second side adjustment knob 60 that engages the frame teeth 24 to move the first arm portion 52, and therefore the second side assembly 16, along the frame 12. The second side adjustment knob 60 is rotatable in opposite directions and engages the frame teeth 24 to provide more or less retraction at a desired site. A second side ratchet mechanism 62 (see
In some embodiments, a second side angulation knob 64 enables pivotal adjustment of the second arm portion 54 relative to the first arm portion 52 between a normal position (see
The second side blade assembly 56 is secured to the second arm portion 54 by way of a second side locking knob 66. As shown in greater detail in
The center assembly 18 includes a center housing 68, a first arm portion 70, a second arm portion 72, and a center blade assembly 74. The first arm portion 70 includes a center slot 82 and translates relative to the center housing 68. The second arm portion 72 is pivotally coupled to the first arm portion 70. The center blade assembly 74 is removably secured to the second arm portion 72.
Referring further to
In some embodiments, a center angulation knob 86 enables pivotal adjustment of the second arm portion 72 relative to the first arm portion 70 between a normal position (see
The center blade assembly 74 is secured to the second arm portion 72 by way of a center locking screw 88. The center locking screw 88 extends into the second arm portion 72 and locks the center blade assembly 74 into position. In one embodiment, the center blade assembly 74 is received by the second arm portion 72 from a top direction. As shown in
The spinal retractor 10 is movable between an open configuration, shown in
Referring now to
Referring to
Referring to
In use, the first and second side blade assemblies 40, 56 are coupled to the modular tap assemblies 94, as shown in
Referring to
Referring now to
In some embodiments, an alternative modular tap assembly may be used in place of or in combination with the modular tap assembly 94. For example, as shown in
Referring now to
Referring now to
Medial arm 218 includes frame 220. Frame 220 includes teeth 236 along at least a portion of frame 220. Frame 220 includes a slot 234 configured to facilitate extension and retraction of medial arm 218. Medial arm 218 includes a body 232. Body 232 may be attached (e.g., welded, removably attached with fasteners, etc.) to frame 212.
Body 232 is configured to remain fixed relative to frame 212. Frame 220 is configured to actuate (e.g., translate in a first and second direction) relative to body 232. Body 232 includes an aperture (e.g., a bore, a hole, a slot, etc.), shown as aperture 252, configured to receive frame 220 therewithin. Frame 220 may translate within aperture 252 of body 232 to selectably extend and retract medial arm 218.
Medial arm 218 includes a ratcheting mechanism 238 configured to maintain a current position of frame 220 relative to body 232 or to restrict translation of frame 220 relative to body 232 in one direction (e.g., an extension direction or a retraction direction). Ratcheting mechanism 238 may be a releasable ratcheting mechanism such that a user can release ratcheting mechanism 238 to enable translation of frame 220 relative to body 232 in both directions (e.g., in both an extension direction and a retraction direction). When in a locked configuration, ratcheting mechanism 238 restricts the translation of frame 220 relative to body 232 in at least one direction. When in an unlocked position, ratcheting mechanism 238 allows translation of frame 220 relative to body 232. When in a locked position, ratcheting mechanism 238 may be configured to allow translation of frame 220 relative to body 232 in a first direction (e.g., an extension direction) and restrict translation of frame 220 relative to body 232 in an opposite direction (e.g., a retraction direction). Ratcheting mechanism 238 may include one or more components configured to interface with teeth 236 of frame 220 to selectably lock or restrict translation of frame 220 relative to body 232.
Medial arm 218 includes an end portion 240. End portion 240 may be integrally formed with frame 220. In other embodiments, end portion 240 is fixedly connected to frame 220 at an end of frame 220. End portion 240 is configured to facilitate rotation of medial blade assembly 250 about axis 254 in either direction 256 or a direction opposite direction 256. End portion 240 is rotatably coupled with receiver portion 248 via pin 244. Receiver portion 248 is configured to rotate about pin 244 to retract tissue or to angulate medial blade assembly 250. Receiver portion 248 and end portion 240 are configured to rotate relative to each other about axis 254 extending substantially through pin 244. Since end portion 240 is fixedly coupled (e.g., removably, integrally formed, welded, etc.) to frame 220, rotation of receiver portion 248 about pin 244 is also rotation relative to frame 220. End portion 240 and receiver portion 248 are hingedly interfaced at pin 244. In some embodiments, pin 244 is a hinge element (e.g., a piano hinge, a barrel hinge, a butterfly hinge, etc.) configured to facilitate rotation (e.g., hinged rotation) of receiver portion 248 relative to end portion 240. In other embodiments, pin 244 is a component of a hinged interface between receiver portion 248 and end portion 240. In other embodiments, the hinged interface between receiver portion 248 and end portion 240 is a spring hinge configured to return receiver portion 248 to a predetermined rotational position relative to end portion 240. Pin 244 is configured to extend through corresponding apertures (e.g., co-linear apertures) of end portion 240 and receiver portion 248 to facilitate rotation of receiver portion 248 about axis 254.
In an exemplary embodiment, receiver portion 248 is configured to rotate (e.g., hingedly rotate) relative to end portion 240 in response to an actuation of rotational control member 242. Rotational control member 242 may be a threaded bolt configured to cause receiver portion 248 to rotate in direction 256 about axis 254 in response to rotational control member 242 being rotated in a first direction (e.g., a clockwise direction) and to cause receiver portion 248 to rotate in a direction opposite direction 256 about axis 254 in response to rotational control member 242 being rotated in a second direction (e.g., a counter-clockwise direction). In this way, a user may adjust rotational control member 242 to rotate (e.g., hingedly pivot) receiver portion 248 with respect to end portion 240 about axis 254 to angulate medial blade assembly 250. Likewise, the user may adjust rotational control member 242 to pivot receiver portion 248 about axis 254 in a direction opposite direction 256.
End portion 240 may include a track (e.g., an aperture, a recess, a groove, a slot, a channel, etc.), shown as channel or track 265. Channel/track 265 extends along an exterior surface of end portion 240 and is configured to interface with a portion of rotational control member 242 to facilitate hinged rotation of receiver portion 248 relative to end portion 240. In an exemplary embodiment, channel/track 265 is configured to slidably interface with a portion of rotational control member 242 to facilitate hinged rotation of receiver portion 248 relative to end portion 240.
Receiver portion 248 is configured to interface (e.g., removably, fixedly, rotationally, etc.) with medial blade assembly 250, according to an exemplary embodiment. Receiver portion 248 and medial blade assembly 250 are configured to rotatably interface at rotational interface 262. Rotational interface 262 may be a ball and socket interface configured to facilitate rotation about axis 258, as described hereinbelow. Rotational interface 262 includes a receiving portion (e.g., a receiving aperture, a receiving socket, a female receiving portion, etc.), shown as socket 264. Socket 264 is defined by receiver portion 248 and is configured to rotatably interface with a corresponding interfacing member of medial arm 218, shown as ball 260. Ball 260 is configured to correspondingly interface with socket 264 to facilitate rotation of ball 260 about axis 258. Axis 258 may be perpendicular to axis 254 and extend generally outwards from a center of receiver portion 248. Receiver portion 248 includes a locking member, shown as set screw 246. Set screw 246 is configured to lock medial blade assembly 250 at a current angular position about axis 258 relative to receiver portion 248. For example, a user may loosen (e.g., turn counter clockwise) set screw 246 until medial blade assembly 250 can rotate freely about axis 258 via rotational interface 262. The user may then rotate medial blade assembly 250 to a desired angular position of axis 258 and then lock the present angular position by tightening (e.g., turning clockwise) set screw 246. Set screw 246 is configured to interface with a cup or pin 274 (see
Medial blade assembly 250 includes a blade 352 and a body 354, according to an exemplary embodiment. Blade 352 is configured to translate relative to body 354 to extend or retract. Blade 352 is configured to interface with a track, channel, groove, etc., of body 354 to selectably translate relative to body 354. In an exemplary embodiment, blade 352 is configured to receive blade extension adjuster 251. Blade extension adjuster 251 is configured to transition blade 352 between an extension or adjustment configuration and a locked or fixed configuration. When blade 352 is in the extension configuration, blade 352 can translate (e.g., extend) relative to body 354. When blade 352 is in the locked configuration, blade 352 is prevented from translating along body 354. Blade extension adjuster 251 may include a handle or grasping portion 410. Grasping portion 410 facilitates easy use of blade extension adjuster 251 for any of the purposes described herein with reference to blade extension adjuster 251.
Referring now to
Aperture 300 is configured to receive pin 226 therewithin. Receiver 288 includes an aperture 302 configured to receive pin 226 therewithin. When assembled, aperture 302 and aperture 300 may be substantially collinear such that pin 226 extends through both aperture 302 and apertures 300 to pivotally couple locking lever 224 to receiver 288. Receiver 288 is configured to be positioned between tabs 304 such that the space defined between tabs 304 receives receiver 288 therewithin and positions aperture 302 of receiver 288 coaxially with aperture 300 of locking lever 224. Receiver 288 may be hollow having an inner volume configured to receive at least a portion of an upper end of toothed shaft 292. Toothed shaft 292 includes an aperture (e.g., a bore, a hole, etc.), shown as aperture 306. Toothed shaft 292 is configured to be received within the hollow portion of receiver 288 such that aperture 306 of toothed shaft 292 is coaxial with aperture 302 of receiver 288, as well as being coaxial with apertures 300 of locking lever 224. Pin 226 is configured to extend through aperture 300 of locking lever 224, aperture 302 of receiver 288, and aperture 306 of toothed shaft 292, when locking mechanism 222 is assembled.
Toothed disc 228 includes a central aperture defined therewithin configured to receive receiver 288. For example, the aperture of toothed disc 228 may substantially match or be slightly greater than a maximum outer perimeter of receiver 288 or a perimeter of receiver 288 at a corresponding location along a height of receiver 288. Compression spring 290 is configured to be assembled between toothed shaft 292 and toothed disc 228. Compression spring 290 is configured to provide an expansive force when locking mechanism 222 is transitioned into a locked state. When locking mechanism 222 is put in the locked state, the compressive force may prevent locking mechanism 222 from accidentally transitioning out of the locked state.
Toothed disc 228 is configured to interface with corresponding teeth 230 of body 232. Body 232 includes an aperture 294 configured to receive toothed shaft 292 therewithin. Aperture 294 is surrounded along its perimeter by teeth 230. Toothed shaft 292 is configured to interface with teeth 236 of frame 220, such that as frame 220 translates within aperture 252 of body 232, toothed shaft 292 is driven to rotate. Likewise, toothed shaft 292 may be driven to rotate to drive frame 200 to translate therewithin aperture 252 of body 232 (e.g., to extend or retract medial arm 218).
When locking mechanism 222 is transitioned into a locked position (e.g., by rotating locking lever 224), tabs 304 act as cams to bias toothed disc 228 to interface with teeth 230 of body 232, as shown in
Referring again to
Referring now to
Referring again to
In an exemplary embodiment, surface 275 of pin 274 is configured to interface with ball 260 of medial blade assembly 250. For example, surface 275 may have a profile matching a surface of ball 260. Ball 260 may include a flat portion configured to interface with surface 275. In other embodiments, surface 275 of pin 274 is curved to match an exterior surface of ball 260. When surface 275 is driven into contact with a corresponding surface of ball 260, medial blade assembly 250 is restricted from rotation about axis 258. Advantageously, this facilitates preventing medial blade assembly 250 from rotating about axis 258. A user can loosen set screw 246 such that surface 275 of pin 274 is not in contact with (or slidably contacts) the corresponding surface of ball 260, adjust the orientation of medial blade assembly 250 about axis 258, and then lock the angular position of medial blade assembly 250 about axis 258 by tightening set screw 246 such that surface 275 of pin 274 is in locking contact with ball 260.
Referring now to
Referring again to
Referring still to
Referring now to
Referring still to
Blade extension adjuster 251 includes interfacing portion 344. Interfacing portion 344 is configured to interface with a slot, channel, recess, guide, etc., of body 354. Interfacing portion 344 may be configured to guide blade extension adjuster 251 into proper engagement with blade 352 at engagement portion 334. Interfacing portion 344 includes first guide member 346 and second guide member 350. First guide member 346 is generally rectangular and may have rounded edges on an outward side. First guide member 346 includes an inward side, surface, face, edge, etc., shown as inward facing surface 348. Inward facing surface 348 is at a side opposite the outward side of first guide member 346. Inward facing surface 348 is configured to slidably interface with a corresponding surface of body 354. In an exemplary embodiment, first guide member 346 is integrally formed with collar 356. Collar 356 may be rotatably coupled to elongated member 332 but prevented from translating along a length of elongated member 332. First guide member 346 may be positioned at an outward edge of collar 356. First guide member 346 extends tangentially outwards from an outer edge of collar 356. First guide member 346 has an overall width 358. In an exemplary embodiment, overall width 358 is greater than a diameter of elongated member 332.
Interfacing portion 344 includes second guide member 350. Second guide member 350 is configured to slidably interface with a groove, channel, track, recess, etc., of body 354 to slidably engage blade extension adjuster 251 with body 354. In an exemplary embodiment, a centerline extending through second guide member 350 which is perpendicular to axis 336 is substantially parallel to a corresponding centerline which extends through first guide member 346 and is perpendicular to axis 336. First guide member 346 and second guide member 350 define a recess 355 therebetween. Recess 355 may be configured to interface with one or more tracks, protrusions, rails, etc., of body 354 to facilitate a slidable and translatable engagement between blade extension adjuster 251 and body 354.
Referring still to
Referring now to
Referring now to
Blade portion 370 includes an aperture 372. Aperture 372 is configured to interface with a corresponding pin 390 (see
Interfacing portion 371 of blade 352 is configured to slidably and inter-lockingly interface with channel 366 of body 354. Interfacing portion 371 is also configured to receive blade extension adjuster 351 for adjusting an overall extension of blade 352. Interfacing portion 371 includes a first engagement member 376 and a second engagement member 374. First engagement member 376 is configured to slidably interface with channel 366 of body 354. For example, first engagement member 376 may include a rim, tab, extension, track, etc., shown as protrusions 388 which extend outwards along substantially an entire perimeter of first engagement member 176. Protrusions 388 may be configured to slidably interface with channel 366 of body 354 to slidably interface blade 352 with channel 366 such that blade 352 can translate along body 354. First engagement member 376 includes a window, opening, hole, aperture, etc., shown as aperture 382. First engagement member 376 may be connected to blade portion 370 via connector 386. Connector 386 may have an arcuate portion and a substantially straight portion. Connector 386 may be an elongated thin member (e.g., a panel, a plate, etc.) having uniform thickness along an entire length of connector 386. In an exemplary embodiment, blade portion 370, connector 386, first engagement member 376, and second engagement member 374 are all integrally formed to form blade 352. A cross-sectional shape of first engagement member 376 as shown in
Interfacing portion 371 of blade 352 includes second engagement member 374. Second engagement member 374 is substantially parallel to first engagement member 376. Second engagement member 374 includes tabs, protrusions, hooks, etc., shown as tabs 380 at an end of second engagement member 374. Second engagement member 374 is configured to ride (e.g., translate) along body 354 outside of channel 366. Tabs 380 of second engagement member 374 are configured to interface with notches 368 of body 354. When tabs 380 of second engagement member 374 interface with notches 368 of body 354, blade 352 is prevented from translating along body 354. Blade extension adjuster 251 is configured to selectably engage or disengage tabs 380 with notches 368 of body 354. When blade extension adjuster 251 is in the locked configuration, tabs 380 engage notches 368 to restrict translation of blade 352. When blade extension adjuster 251 is in the adjustment configuration, tabs 380 are driven to be disengaged from notches 368, thereby allowing blade 352 to be translated along channel 366/body 354.
First engagement member 376 and second engagement member 374 define an opening, aperture, space, recess, etc., therebetween, shown as opening 378. Opening 378 is configured to receive blade extension adjuster 251 therewithin. Opening 378 may be defined by space between first engagement member 376 and second engagement member 374, as well as a cross-sectional shape of each of first engagement member 376 and second engagement member 374. For example, as shown in
Engagement portion 334 is inserted into aperture 378 and rotated 90 degrees from the locked configuration to the extension configuration to disengage tabs 380 from notches 368 of body 354. When blade extension adjuster 251 is rotated 90 degrees, second protrusion 340 interfaces with aperture 382 of first engagement member 376. Second protrusion 340 may snap into, or fit into aperture 382 such that blade 352 translates along channel 366 with translation of blade extension adjuster 251. Aperture 382 may have a shape which corresponds to the cross-section of second protrusion 340 such that second protrusion 340 can interface with aperture 378. When second protrusion 340 is interfaced with aperture 378, blade extension adjuster 251 and blade 352 are translatably interlocked such that blade 352 can be adjusted (e.g., extended or retracted).
When blade extension adjuster 251 is rotated 90 degrees such that it is in the extension configuration, first protrusion 338 may function as a cam. First protrusion 338 may interface with second engagement member 374 and drive second engagement member 374 to deflect (e.g., bend). Second engagement member 374 functions as a spring which deflects or bends some amount due to being driven by first protrusion 338. When second engagement member 374 deflects, bends, deforms, etc., tabs 380 disengage notches 368, allowing blade 352 to translate along channel 366. First protrusion 338 may interface with a corresponding inner surface of second engagement member 374. For example, first protrusion 338 may interface with surface 395.
Referring now to
Likewise, when blade extension adjuster 251 transitions into the extension configuration as shown in
Referring now to
Body 354 includes ball 260. Ball 260 may be integrally formed at an upper end 396 of body 354. Ball 260 extends from a rear side 398 of body 354. Ball 260 includes aperture 400 extending at least partially through a center of ball 260. In some embodiments, aperture 400 extends entirely through ball 260. In other embodiments, aperture 400 extends partially through ball 260. Aperture 400 may have a shape corresponding to a cross-section at an end of blade extension adjuster 251. Aperture 400 is configured to receive the end of blade extension adjuster 251 such that blade extension adjuster 251 can be used to adjust an orientation of blade 352. For example, blade extension adjuster 251 may provide a longer moment arm for rotating medial blade assembly 250 about axis 258 and/or axis 254. Advantageously, blade extension adjuster 251 may have a dual-use. For example, blade extension adjuster 251 may be inserted into aperture 378 and used to extend or retract blade 352 and also to rotate medial blade assembly 250 by inserting blade extension adjuster 251 into aperture 400 of ball 260 and rotating medial blade assembly 250.
Body 354 includes track members 394. Track members 394 extend substantially an entire length of body 354. Track members 394 may define at least a portion of channel 366 (e.g., one or more sides of channel 366). Track members 394 are substantially parallel to each other and are offset a distance from each other. Track members 394 include notches 368. Notches 368 extend at least partially into track members 394 on either side of channel 366. Notches 368 are disposed along at least a portion of the length of channel 366 or body 354. Notches 368 are configured to provide predetermined positions of blade 352. In some embodiments, notches 368 include two or more notches. Notches 368 are spaced evenly apart along the length of channel 366 and/or body 354, according to some embodiments. In other embodiments, notches 368 are spaced unevenly along the length of channel 366. For example, notches 368 may each be disposed (e.g., spaced apart) a quarter of an inch from each other. In other embodiments, some of notches 368 are spaced a first distance along the length of channel 366 and/or body 354, while other notches 368 are spaced apart a second distance, where the first distance and the second distance are unequal (e.g., the first distance is greater than the second distance or vice versa). Notches 368 are configured to interface/engage tabs 380 of second engagement member 374. Second engagement member 374 may be selectably disengaged from notches 368 via insertion and rotation of blade extension adjuster 251. Blade 352 can then be translated along channel 366 via moving blade extension adjuster 251 until tabs 380 are adjacent another set of notches 368. Tabs 380 can then be engaged with the other set of notches 368 at a different height (e.g., a different amount of extension or retraction) by rotating blade extension adjuster 251.
Body 354 further includes slot 392. Slot 392 is configured to interface with pin 390. Pin 390 may extend through aperture 372 of blade 352 and translate along slot 392. Slot 392 may prevent blade 352 from rotating. Additionally, pin 390 is restricted to translating along only the entire length of slot 392. This can restrict blade 352 from being translated along channel 366 (e.g., up or down, extended or retracted, etc.) to a position where there are no corresponding notches 368 for tabs 380 to interface with.
Referring now to
Referring now to
Tap and driver assembly 600 includes a driver component 602, a sleeve 604, a hoop 606, and a tap 608. Driver component 602 may be any driver, member, device, etc., configured to drive tap 608 (e.g., to rotate tap 608). Driver component 602 may include a square portion, a hexagonal portion, etc., shown as interfacing member 614. Interfacing member 614 is configured to rotatably couple driver component 602 to a driving device. Interfacing member 614 is configured to be rotated by the driving device and rotate tap 608. Driver component 602 is configured to extend through substantially an entire length of sleeve 604. Driver component 602 may include one or more elongated members 616 configured to extend through sleeve 604 and couple to tap 608. Sleeve 604 may be a generally cylindrical and elongated member having a sidewall with a thickness and an inner volume therewithin. The inner volume of sleeve 604 may receive driver component 602 therewithin. Driver component 602 may include a threaded portion 618 at an end (e.g., at an end of one of elongated members 616). Threaded portion 618 may be a male or female threaded portion. Threaded portion 618 may have clockwise or counter-clockwise threads. In an exemplary embodiment, threaded portion 618 include female threads which extend into driver component 602 or one of elongated members 616. The female threads are configured to threadingly interface with male threads of tap 608. In other embodiments, driver component 602 includes an aperture (e.g., a square aperture, a hexagonal aperture) in place of threaded portion 618. The aperture may be configured to interface with an end of tap 608 to transfer rotation of driver component 602 to tap 608.
Hoop 606 is configured to removably connect to sleeve 604, as described in greater detail herein. Hoop 606 is configured to removably couple with any of blade 352, medial arm 218, first and second side assemblies 214 and 216, blade portion 370, etc. Hoop 606 includes receiver 620. Receiver 620 is configured to removably couple hoop 606 with sleeve 604. Receiver 620 may be a slot, an aperture, an opening, etc., configured to receive a hooked end of elongated member 612 of sleeve 604 therewithin. Elongated member 612 of sleeve 604 may function as a spring member. For example, elongated member 612 may deflect, bend, deform, etc., when sleeve 604 is being connected to hoop 606. Elongated member 612 may deflect or bend and snap into receiver 620. For example, sleeve 604 may be inserted downwards into hoop 606 such that elongated member 612 deflects radially outwards from a centerline of sleeve 604. When sleeve 604 has been inserted fully into hoop 606, elongated member 612 returns to its original (e.g., straight) position and the hook at the end of elongated member 612 snaps into receiver 620. Sleeve 604 and hoop 606 may be fixedly coupled via the interface between receiver 620 and elongated member 612. In order to remove sleeve 604 from hoop 606, elongated member 612 must be deflected, deformed, bent, etc., until the hook at the end of elongated member 612 does not engage/interface with receiver 620. When the hook at the end of elongated member 612 is disengaged from receiver 620, sleeve 604 can be removed from hoop 606.
Hoop 606 includes receiving portion 622 and elongated portion 624. Receiving portion 622 and elongated portion 624 may be integrally formed. Receiving portion 622 is configured to receive (e.g., via an aperture, a hole, etc.), sleeve 604. For example, receiving portion 622 may include an aperture configured to receive a stepped portion or a tapered end (e.g., tapered end 628 as shown in
Tap 608 may have self-tapping threads. Tap 608 may be driven to rotate by rotation of driver component 602. Tap 608 is rotatably coupled with driver component 602 (e.g., via a threaded interface) such that rotation of driver component 602 is transferred to tap 608.
Advantageously, the retractor as shown in
It should be understood that the spinal retractors shown herein may share any or all of the features described elsewhere herein or with reference to U.S. application Ser. No. 15/448,010, filed Mar. 2, 2017, the entirety of which is incorporated by reference herein, including blade extenders/supplemental blades, blade locking features, lighting features extending within channels in the blades, and the like. All such combinations of features are to be understood to be within the scope of the present disclosure.
In one embodiment, in operating a spinal retractor such as one described herein, the retractor is placed into a desired position. A first side assembly, a second side assembly, and a center assembly of the retractor are translated along threaded shafts relative to a frame of the retractor. The side and center assemblies may be translated via manipulation of ball joint assemblies that couple adjustment knobs to the respective threaded shafts.
The spinal retractor shown and described herein may provide various benefits over more traditional designs. The support handle provides a modular, ergonomic handle for improved manipulation of the base or frame to ease alignment of the device, and the adjustment handles provide modular ergonomic handles for translation of the side and center assemblies without the need for additional instrumentation. Further, the adjustment handles stabilize the positions of the adjustment knobs for ease of use. The gear ratios of the threaded shafts provide faster translation of components (e.g., twice as fast as certain conventional device) such that each of the side and center assemblies can be completely expanded with 1.5 revolutions of the threaded shafts/adjustment knobs.
Additionally, the frame weight is less compared to more traditional devices (e.g., by 15 percent or more), and the frame geometry is optimized to enable table arm attachment to the center arm assembly while eliminating interference with the base or frame (e.g., in situations when the table arm extends generally parallel to the length of the frame or base). In some embodiments, blade extenders include self-retaining springs to ensure the blade extenders remain captured within the blades, and the blade locking mechanisms provide a spring-activated locking feature requiring only a one quarter turn to lock/unlock the blades. Further, light sources may extend down channels in the blades to provide optimized lighting (e.g., 15 percent or more light output relative to more traditional designs).
While the invention has been illustrated and described in detail in the drawings and foregoing description, the same is to be considered as illustrative and not restrictive in character, it being understood that only a preferred embodiment has been shown and described and that all changes and modifications that come within the spirit of the invention are desired to be protected.
Butler, Michael S., Predick, Daniel, Zakelj, Paul Christopher
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May 04 2020 | BUTLER, MICHAEL S | Life Spine, Inc | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 052614 | /0056 | |
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